1) Write the chemical equation
![2C_8H_(18)+25O_2\rightarrow12CO_2+18H_2O](https://img.qammunity.org/2023/formulas/chemistry/college/6fatoer76btrvrl4dag4xpenm6o4hk06eo.png)
![\Delta Hº_(rxn)=-11018kJ](https://img.qammunity.org/2023/formulas/chemistry/college/lkjs26lx9i0rkbk88z4t456cny84c1mvfb.png)
2) Convert grams of octane to moles of octane
The molar mass of octane is 114.33 g/mol
![_{}molC_8H_(18)=75.00gC_8H_(18)\cdot(1molC_8H_(18))/(114.33gC_8H_(18))=0.6560molC_8H_(18)](https://img.qammunity.org/2023/formulas/chemistry/college/aoe6ceptjjbm3ys97uwfidbcy4ou6vsebe.png)
3) Calculate the heat of the reaction
Use the heat of reaction of the balanced reaction to make a conversion factor.
2 C8H18 = -11018kJ
![\Delta H=0.6560molC_8H_(18)\cdot(-11018kJ)/(2molC_8H_(18))=-3613.9kJ](https://img.qammunity.org/2023/formulas/chemistry/college/dcfm04nvp980n6yw6qhowgouklqryq8cof.png)
The heat of reaction for 75.00 g of octane is -3614kJ.
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